| Literature DB >> 28599655 |
Yuiko Kato1, Kazuhiko Ochiai2, Shota Kawakami1, Nobuhiro Nakao3, Daigo Azakami1, Makoto Bonkobara4, Masaki Michishita5, Masami Morimatsu6, Masami Watanabe7, Toshinori Omi8.
Abstract
BACKGROUND: The pathological condition of canine prostate cancer resembles that of human androgen-independent prostate cancer. Both canine and human androgen receptor (AR) signalling are inhibited by overexpression of the dimerized co-chaperone small glutamine-rich tetratricopeptide repeat-containing protein α (SGTA), which is considered to cause the development of androgen-independency. Reduced expression in immortalised cells (REIC/Dkk-3) interferes with SGTA dimerization and rescues AR signalling. This study aimed to assess the effects of REIC/Dkk-3 and SGTA interactions on AR signalling in the canine androgen-independent prostate cancer cell line CHP-1.Entities:
Keywords: Androgen receptor (AR) signalling; Canine; Prostate cancer; Reduced expression in immortalised cells (REIC/Dkk-3); Small glutamine-rich tetratricopeptide repeat-containing protein α (SGTA)
Mesh:
Substances:
Year: 2017 PMID: 28599655 PMCID: PMC5466802 DOI: 10.1186/s12917-017-1094-4
Source DB: PubMed Journal: BMC Vet Res ISSN: 1746-6148 Impact factor: 2.741
Fig. 1Interaction between canine SGTA and REIC/Dkk-3. a Western blot analysis showing the expression profile of canine REIC/Dkk-3 and control β-actin in canine control fibroblasts and androgen-independent cell line CHP-1. b The interaction between canine SGTA and REIC/Dkk-3 was demonstrated by a mammalian two-hybrid (MTH) assay. DBD: GAL4-DNA-binding domain fusion protein. AD: VP16 transactivation domain fusion protein. The results were obtained from three independent experiments. c Western blot and pull-down assay results obtained from haemagglutinin (HA)-tagged REIC/Dkk-3 and Halo-tagged SGTA transfected 293 T cells lysates. d Co-localization of canine forced-expressed Halo-tagged REIC/Dkk-3 and endogenous SGTA was examined by double-immunofluorescence staining and observed by fluorescence microscopy. The images in green and red show the intracellular localization of Halo-tagged REIC/Dkk-3 and SGTA, respectively. The areas of overlap between REIC/Dkk-3 and SGTA are shown in yellow in the merged image
Fig. 2Canine REIC/Dkk-3 interference in SGTA dimerization. The upper graph shows the role of canine REIC/Dkk-3, which interferes with SGTA dimerization, examined by a modified MTH assay. 293 T cells were co-transfected with DBD- or AD-fused canine SGTA plasmids and haemagglutinin (HA)-tagged REIC/Dkk-3. Luciferase activity in cell lysates was determined 48 h after transfection. The results were obtained from three independent experiments. The results show a significant difference between the SGTA alone and with the addition of 100 ng of canine REIC/Dkk-3 (*: P < 0.05, ANOVA). The lower panel depicts the western blot analysis showing the expression of DBD- and AD- fused canine SGTA, and haemagglutinin (HA)-tagged REIC/Dkk-3 after co-transfection in a parallel experiment with that depicted in the upper graph
Fig. 3Interaction between canine SGTA and REIC/Dkk-3 regulates AR signalling in canine androgen-independent prostate cancer cell line CHP-1. The upper graph shows the effects of canine REIC/Dkk-3 expression on AR signalling in the AR absent or present conditions with/without DHT stimulation in CHP-1 cells. Cells were co-transfected with the p159-pPr-Luc plasmid and treated with dihydrotestosterone (DHT). The value for the baseline was obtained using the control vehicle. The results were obtained from three independent experiments, and show a significant difference in AR activity based on REIC/Dkk-3 expression (*: P < 0.05, ANOVA). The lower figure shows the western blot results for the expression of EGFP-tagged AR, HA-tagged REIC/Dkk-3 and endogenous SGTA in CHP-1 cells after co-transfection in a parallel experiment with that depicted in the upper graph
Fig. 4Co-transfection with exogenous canine SGTA and REIC/Dkk-3 regulates AR signalling in human androgen-independent cancer cell line PC3. a Western blot analysis showing the expression of EGFP-tagged AR, Halo-tagged canine SGTA and HA-tagged canine REIC/Dkk-3 after co-transfection in a parallel experiment with that depicted in the graph b. b The effects of canine SGTA expression on the AR activity were examined in human prostate cancer PC3 cells under co-transfection with the AR, canine SGTA, and canine REIC/Dkk-3, with/without DHT. The results were obtained from three independent experiments, and show a significant difference in AR activity based on SGTA and/or REIC/Dkk-3 expression (*: P < 0.05, Student’s t-test). All transfection mixes were balanced with the appropriate empty vectors in terms of the ratio of the expression vectors and total plasmids. The value for the baseline was obtained using the control vehicle